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不同频率轴向循环加载对腰椎时域振动响应的影响:有限元研究。

Influence of different frequencies of axial cyclic loading on time-domain vibration response of the lumbar spine: A finite element study.

机构信息

School of Mechanical Engineering and Automation, Northeastern University, Shenyang, PR China.

School of Mechanical Engineering and Automation, Northeastern University, Shenyang, PR China.

出版信息

Comput Biol Med. 2017 Jul 1;86:75-81. doi: 10.1016/j.compbiomed.2017.05.004. Epub 2017 May 10.

DOI:10.1016/j.compbiomed.2017.05.004
PMID:28511121
Abstract

Very few studies have quantitatively analyzed influence of the loading frequency on time-domain vibration response of the whole lumbar spine in the presence of a physiologic compressive preload. In this study, a three-dimensional non-linear finite element model of ligamentous L1-S1 segment was developed to predict time-domain dynamic response of the whole lumbar spine to axial cyclic loading with different frequencies. A compressive follower preload of 400 N was applied to the model to simulate the physiologic compressive load. Modal analysis was initially performed to extract axial resonant frequency of the model under a 40 kg upper body mass and the 400 N preload. The result showed that the axial resonant frequency was 7.77 Hz. Subsequently, transient dynamic analyses were performed on the model under a sinusoidal axial load of ±40 N at frequencies of 3, 5, 7, 9, 11, 13 and 15 Hz with the 400 N preload and 40 kg mass. The computational results (strains and stresses in the spinal components) were collected and plotted as a function of time. These predicted results were found to be frequency-dependent and consistent with the notion in engineering dynamics texts that the closer the loading frequency approaches the resonant frequency, the larger the response is. For example, the results for 5 Hz load compared to 3 Hz load showed a 68.6-111.5% increase in peak-to-bottom variations of the predicted response parameters, and the results for 13 Hz load compared to 11 Hz load showed a 26.4-37.8% decrease in these variations.

摘要

很少有研究从定量的角度分析在生理压缩预载存在的情况下,加载频率对整个腰椎的时域振动响应的影响。在这项研究中,建立了一个韧带 L1-S1 节段的三维非线性有限元模型,以预测不同频率的轴向循环加载对整个腰椎的时域动态响应。模型施加了 400N 的压缩跟随预载,以模拟生理压缩载荷。最初进行模态分析以提取模型在 40kg 上身质量和 400N 预载下的轴向共振频率。结果表明,轴向共振频率为 7.77Hz。随后,在 400N 预载和 40kg 质量下,对模型进行了正弦轴向 ±40N 负载频率为 3、5、7、9、11、13 和 15Hz 的瞬态动力学分析。将(脊柱部件的应变和应力)计算结果作为时间的函数进行收集和绘制。这些预测结果呈现出频率依赖性,与工程动力学教材中的概念一致,即加载频率越接近共振频率,响应就越大。例如,与 3Hz 负载相比,5Hz 负载的预测响应参数的峰值到谷底变化增加了 68.6-111.5%,与 11Hz 负载相比,13Hz 负载的预测响应参数的峰值到谷底变化减少了 26.4-37.8%。

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